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pH 值和非共价配体结合调节寨卡病毒 NS2B/NS3 蛋白酶结合位点残基:来自 MD 和恒 pH 值 MD 模拟的发现。

pH and non-covalent ligand binding modulate Zika virus NS2B/NS3 protease binding site residues: Discoveries from MD and constant pH MD simulations.

机构信息

Laboratório de Modelagem Molecular e Planejamento de Fármacos, Departamento de Bioquímica e Imunologia, Instituto de Ciências Biológicas, Universidade Federal de Minas Gerais, Belo Horizonte, Brazil.

Grupo de Biofísica Computacional e Modelagem Molecular, Programa de Computação Científica, Fiocruz, Rio de Janeiro, Brazil.

出版信息

J Biomol Struct Dyn. 2022;40(20):10359-10372. doi: 10.1080/07391102.2021.1943528. Epub 2021 Jun 27.

Abstract

Zika virus (ZIKV) is a global health concern and has been linked to severe neurological pathologies. Although no medication is available yet, many efforts to develop antivirals and host cell binding inhibitors led to attractive drug-like scaffolds, mainly targeting the nonstructural NS2B/NS3 protease (NS2B/NS3pro). NS2B/NS3pro active site has several titratable residues susceptible to pH changes and ligand binding; hence, understanding these residues' protonation is essential to drug design efforts targeting the active site. Here we use in silico methods to probe non-covalent binding and its effect on p shifts of the active site residues on a ligand-free protease and with a non-peptidic competitive inhibitor (=13.5µM). By applying constant pH molecular dynamics, we found that the catalytic residues of the unbound NS2B/NS3pro achieved the protonation needed for the serine protease mechanism over the pH value of 8.5. Nevertheless, the protease in the holo state achieved this same scenario at lower pH values. Also, non-covalent binding affected the catalytic triad (H51, D75, and S135) by stabilizing their distances and interaction network. Thus, NS2B/NS3pro residues configuration for activity might be both pH-dependent and influenced by ligand binding. However, compound presence within the binding site destabilized the NS2B, interfering with the closed and active conformation necessary for substrate binding and catalysis. Our outcomes provide valuable insights into non-covalent inhibitor behavior and its effect on protease active site residues, impacting optimization and design of novel compounds. Communicated by Ramaswamy H. Sarma.

摘要

Zika 病毒(ZIKV)是一个全球性的健康关注点,已与严重的神经病理学相关联。尽管目前尚无可用的药物,但许多开发抗病毒药物和宿主细胞结合抑制剂的努力导致了有吸引力的类似药物的支架,主要针对非结构 NS2B/NS3 蛋白酶(NS2B/NS3pro)。NS2B/NS3pro 活性位点有几个易变的残基,易受 pH 值变化和配体结合的影响;因此,了解这些残基的质子化对于针对活性位点的药物设计工作至关重要。在这里,我们使用计算方法来探测非共价结合及其对无配体蛋白酶和非肽竞争性抑制剂(=13.5µM)中活性位点残基 p 位移的影响。通过应用恒 pH 值分子动力学,我们发现,未结合的 NS2B/NS3pro 的催化残基在 pH 值为 8.5 以上时,达到了丝氨酸蛋白酶机制所需的质子化。然而,在全酶状态下,蛋白酶在较低的 pH 值下也达到了相同的情况。此外,非共价结合通过稳定其距离和相互作用网络,影响了催化三联体(H51、D75 和 S135)。因此,NS2B/NS3pro 活性的残基构象可能既依赖于 pH 值,又受配体结合的影响。然而,化合物在结合位点内的存在使 NS2B 不稳定,干扰了底物结合和催化所必需的封闭和活性构象。我们的研究结果为非共价抑制剂的行为及其对蛋白酶活性位点残基的影响提供了有价值的见解,这对新型化合物的优化和设计具有重要影响。由 Ramaswamy H. Sarma 传达。

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